US9391898B2 - Non-congestive loss in HSPA congestion control - Google Patents
Non-congestive loss in HSPA congestion control Download PDFInfo
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- US9391898B2 US9391898B2 US14/244,238 US201414244238A US9391898B2 US 9391898 B2 US9391898 B2 US 9391898B2 US 201414244238 A US201414244238 A US 201414244238A US 9391898 B2 US9391898 B2 US 9391898B2
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- 238000001514 detection method Methods 0.000 description 7
- 238000004891 communication Methods 0.000 description 2
- 238000009432 framing Methods 0.000 description 2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L47/00—Traffic control in data switching networks
- H04L47/10—Flow control; Congestion control
- H04L47/11—Identifying congestion
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L47/00—Traffic control in data switching networks
- H04L47/10—Flow control; Congestion control
- H04L47/26—Flow control; Congestion control using explicit feedback to the source, e.g. choke packets
- H04L47/263—Rate modification at the source after receiving feedback
Definitions
- This disclosure relates to a methods and nodes for increased utilization of a transport network link of a high-speed packet access (HSPA) system.
- HSPA high-speed packet access
- the transport link connects a radio network controller (RNC) and a Node B.
- RNC radio network controller
- FIG. 1 schematically presents a RNC 102 connected to Node B 104 over the lub interface.
- the interface between the Node B 104 and a user equipment is the Uu air interface.
- the transport link between the RNC 102 and Node B 104 can be a bottleneck when its capacity is smaller than the available maximal capacity over the air interface Uu.
- a typical scenario is when the Node B 104 is connected to the RNC 102 through an E1 link having a capacity about 2 Mbps, and the available air interface Uu capacity for HSPA is significantly larger that this 2 Mbps.
- packet loss may occur due to congestion or due to other reasons, i.e. data corruption.
- fair sharing of resources may be performed by the Uu scheduler.
- the Uu scheduler cannot handle a potential transport link bottleneck.
- the radio access network TN may be a potential bottleneck, congestion control is needed on the transport network.
- the per-flow HSPA transport network congestion control and the active queue management (AQM) based congestion control (ABCC), are examples of congestion control techniques.
- a gap in the sequence of data packets of the data packet indicates a data packet loss.
- This data packet loss is interpreted as congestion in the per-flow HSPA transport network congestion technique.
- This interpreted congestion causes a congestion action to be performed in the form of a reduction of the maximum allowed bitrate of the data packet flow.
- the maximum of the allowed bitrate may be reduced by as much as 50%.
- the TCP layer upon an interpreted congestion, the TCP layer is informed of TN congestion by dropping an application level IP packet.
- a first example embodiment provides a method for increased utilization of a transport network link in receiving a data packet flow from a first network node over the transport network of a HSPA system.
- the method that is performed in a second network node, comprises detecting a data packet loss in receiving a data packet flow, and detecting data delay information of data packets of the data packet flow as received from the first network node.
- the method also comprises determining if the detected data packet loss comprise non-congestive data packet loss, based on the detected data packet loss and the detected data delay information.
- the method comprises, when the detected data packet loss comprises non-congestive data packet loss, for a pre-determined time period omitting to perform a congestion action towards the first network node affecting the data packet flow.
- Determining may comprise determining if the data delay of received data packets is within a pre-defined delay threshold or if a time dependence of the data delay of data packets being received is decreasing with time.
- the method may further comprise determining the number of data packet loss events, during a pre-determined first time period or per a pre-determined first number of data packets sent from the first network node, based on the detected data packet loss.
- the determined number of data packet loss events comprises a number of data packet loss events during a second pre-determined time period
- said number of data packet loss events during the second pre-determined time period may be considered as a single data packet loss event.
- said consecutive data packet loss events may be considered as a single data packet loss event.
- the determined number of data packet loss events comprises more than a pre-determined third number of data packet loss events, it can be determined that the detected data packet loss comprises congestive data packet loss.
- Omitting to perform a congestion action may comprise omitting to reduce the maximum allowed bitrate for the data packet flow, or to inform the transport layer related to the first and second network nodes, about transport network congestion with a dropped application level Internet protocol data packet.
- Detecting a packet loss may comprise detecting a gap in a sequence of data packets of the data packet flow, a corrupt data packet among the data packets of the data packet flow, or an explicit congestion notification mark of a data packet of the data packet flow.
- Detecting data delay information may comprise detecting a delay of a data packet of the data packet flow received by the second network node, based on a reference time filled in a time field of the data packet.
- Receiving the data packet flow may comprise receiving a high-speed uplink packet access data packet flow, or a high-speed downlink packet access data packet flow.
- a second example embodiment provides a network node configured for increased utilization of a transport network link in receiving a data packet flow from another network node over the transport network of a HSPA system.
- the network node comprises a receiver that is configured to receive the data packet flow, and a detector that is configured to detect a data packet loss in the received data packet flow, and to detect data delay information of data packets of the data packet flow.
- the network node also comprises a controller that is configured to determine if the detected data packet loss comprise non-congestive data packet loss, based on the detected data packet loss and the detected data delay information.
- the controller is further configured to, for a pre-determined time period, omit to perform a congestion action towards the first network node affecting the data packet flow, when the detected data packet loss comprises non-congestive data packet loss.
- the detector may be configured to detect a gap in a sequence of data packets of the data packet flow.
- the detector may be configured to detect a delay of a data packet of the data packet flow based on a reference time filled in a time field of the data packet.
- the detector and the controller may be implemented as a congestion detector of the network node.
- the flow of data packets may comprise a flow of data frames.
- the network node may comprise a Node B or a radio network controller, RNC.
- the end user throughput and the utilization of low quality TN links is increased by omitting to perform unnecessary congestion actions in the case of non-congestive packet loss events.
- FIG. 1 schematically presents a part of a transport network
- FIGS. 2, 3, 4A and 4B are flowcharts illustrating embodiments of the invention.
- FIGS. 5 and 6 schematically indicate principles related to the number of data packet loss events, according to some embodiments of the invention.
- FIG. 7 schematically illustrates a network node according to embodiments of the invention.
- a gap in the sequence of data packet flow indicates a data packet loss, and this data packet loss is interpreted as congestion in the per-flow HSPA transport network congestion control.
- the HSPA transport network congestion control does not distinguish between congestive and non-congestive packet loss. Packet loss is therefore always considered to be due to congestion. In the case of a detected packet loss, congestion action will be performed irrespective of the reason of the packet loss.
- a data packet loss does not need to be caused by congestion.
- the packet loss may instead be a non-congestive packet loss, i.e. a packet loss that is not caused by congestion.
- a non-congestive loss may thus be mistaken as a congestive packet loss. Since a congestive packet loss causes a congestion action to be performed, a non-congestive loss mistaken as a congestive loss would also cause a congestion action. When applying the per-flow HSPA transport network congestion control, the congestion action would be executed as an unnecessary reduction of the maximum bitrate over the TN. Hence, if non-congestive packet loss occurs frequently, which may happen in the case of a low quality TN, the HSPA transport network congestion control would result in an unnecessarily low end-user throughput and low utilization of the bandwidth of the TN.
- FIG. 2 presents a flowchart according to some embodiments of the present invention.
- the flowchart illustrates a general method for increased utilization of a transport network link in receiving a data packet flow from a first network node over the transport network of a HSPA system. The method is performed in a second network node of the HSPA system.
- a data packet loss in receiving a data packet flow is detected.
- the detected data packet loss comprises non-congestive data packet loss, based on the detected data packet loss and the detected data delay information.
- the detected data packet loss comprises non-congestive data packet loss, for a pre-determined time period it is omitted 208 to perform congestion action towards the first network node affecting the data packet flow.
- Determining may comprise determining if the data delay of received data packets is within a pre-defined delay threshold or if a time dependence of the data delay of data packets being received is decreasing with time.
- the method may further comprise determining the number of data packet loss events, during a pre-determined first time period or per a pre-determined first number of data packets sent from the first network node, based on the detected data packet loss.
- the determined number of data packet loss events comprises a number of data packet loss events during a pre-determined second time period
- said number of data packet loss events during a pre-determined second time period may be considered as a single data packet loss event.
- said number of consecutive data packet loss events may be considered as a single data packet loss event.
- the determined number of data packet loss events comprises more than a pre-determined third number of data packet loss events, it can be determined that the detected data packet loss comprises congestive data packet loss.
- Omitting to perform a congestion action may comprise omitting to reduce the maximum allowed bitrate for the data packet flow, or to inform the transport layer related to the first and second network nodes about transport network congestion with a dropped application level Internet protocol data packet.
- Detecting a packet loss may comprise detecting a gap in a sequence of data packets of the data packet flow, a corrupt data packet among the data packets of the data packet flow, or an explicit congestion notification mark of a data packet of the data packet flow.
- Detecting data delay information may comprise detecting a delay of a data packet of the data packet flow received by the second network node, based on a reference time filled in a time field of the data packet.
- congestion control can be applied in both the uplink and downlink, i.e. high-speed uplink data packet access and high-speed downlink data packet access, respectively.
- the method as presented in FIG. 2 is configurable and can be switched on in the case of a low quality TN, where non-congestive packet loss occurs frequently.
- Non-congestive packet loss detection may be performed by using frame loss detection and dynamic delay detection.
- Embodiments of the invention are applicable to rate-based, window-based and active queue management based congestion control techniques.
- HSPA transport network congestion control no bitrate reduction is performed upon detection of non-congestive loss events.
- ABCC the lost packets are retransmitted by the radio link control protocol acknowledged mode mechanism, and the transmission control protocol is not informed about congestion.
- the method for increased utilization of a transport network link in receiving a data packet flow from a first network node over the transport network of a HSPA system is switched off. Having the method switched on would cause an increased reaction time on congestion unnecessarily.
- FIG. 3 presents a flowchart of a method according to some embodiments of the invention. This flowchart illustrates a method for increased utilization of a transport network link in receiving a data packet flow from a first network node over the transport network of a HSPA system. The method is again performed in a second network node of the HSPA system.
- data frame loss is detected.
- the lub framing protocol may here be used to detect data frame loss.
- data frame delay information is detected.
- the so-called delay reference time field of data frames may be used.
- the delay reference time may be regarded as a timestamp of the data packet when located at or passing a first network node. At the time the data packet is located at or passing a second network node, an amount of time has passed. This amount of time is checked and handled according to the presented method.
- a dynamic delay D of a data packet of the data packet flow is larger than 50 milliseconds (ms) is detected, or not. If the dynamic delay D larger than 50 ms is not detected 306 (N), it is determined that data frame loss comprises non-congestive loss event in 310 . Based on large amounts of experience it has been concluded that a dynamic delay >ca 40-50 ms dynamic delay reflects a congestive loss.
- a 50-ms threshold for the data delay may be used.
- other thresholds for instance 40 ms and 100 ms, for the data delay may be used.
- congestion actions are omitted.
- a dynamic delay D larger than 50 ms is in fact detected 306 (Y)
- 316 performing congestion actions does not fall within the present invention.
- it is merely included as a contrast to omitting congestion actions in 312 , in the case the data frame loss comprises non-congestive loss.
- a dynamic delay D of a data packet of the data packet flow is larger than 50 milliseconds (ms) is detected, or not, it is determined 308 whether the time derivative of the dynamic delay D is positive, or not. It is thus determined the time dependence of the delay of data packets of the data packet flow.
- FIGS. 4A and 4B present a method for increased utilization of a transport network link in receiving a data packet flow from a first network node over the transport network of a HSPA system.
- the flowchart of FIGS. 4A and 4B present a method according to some other embodiments of the invention. The method as performed in FIGS. 4A and 4B is performed in a second network node of the HSPA system.
- data frame loss is detected. This frame loss may be detected by the lub framing protocol.
- the number of data frame loss events of the data frame loss is determined. As will be described down below, it is often important to consider the circumstances at which packet loss events occur in determining whether a plurality of data packet loss events. Multiple data packet loss events may be considered as a single data packet loss event or not.
- FIG. 5 schematically illustrates a time line along which data frame loss events can be detected.
- An “X” is a marker of a detected data frame loss event along the time line.
- an “X” 50 is marked along the time line and a timer T is started.
- a second data frame loss event “X” 52 is detected within a time Tp from the detection of the first data frame loss event, the first 50 and second 52 data frame loss events are considered a single data frame loss event.
- the timer T and Tp can be set to 200 ms and 10 ms, respectively, although other values may be used. Timer T is typically significantly larger than timer Tp.
- both these data frame loss events are considered to be one single data frame loss event.
- 404 A it is determined whether the number of data frame loss events is increased beyond a number N within a time period T, or not. In the case it is determined that the number of data frame loss events is not increased beyond N within time T, 404 (N), data frame delay information is detected 406 .
- data frame loss event comprises congestive loss.
- the time T is one example of the pre-determined first time period.
- the time Tp is one example of the pre-determined second time period.
- 404 A and 404 B illustrate two alternative embodiments of the present invention. It is thus not the intention to determine both 404 A and 404 B in the same flowchart. For this reason 404 B is illustrated with dotted lines. In one flow, either 404 A or 404 B is thus being executed.
- FIG. 6 illustrates another way to interpret the number of detected data frame loss events, which way is similar but different from the way as illustrated in FIG. 5 .
- FIG. 6 schematically presents a number of consecutive frames in a data frame flow.
- a shaded data frame indicates that a data frame loss event has occurred during this data frame.
- the data frame loss event may comprise that the data frame is corrupt or that it comprises a gap in the sequence of data frames.
- a data frame loss event 60 it is determined whether there are consecutive data frame loss events directly following the detected data frames loss event 60 .
- FIG. 6 it is illustrated two consecutive data frame loss events 62 directly following the data frame loss event 60 .
- these consecutive data frame loss events i.e. data frame loss events 60 and 62 , all correspond to a single data frame loss event, provided that they occur within a P number of packets.
- a data frame loss event 64 is detected within P data frames, the number of detected data frame loss events is incremented. If the incremented number of data frame loss events within P data frames thereby increases beyond the number N, it is determined that the frame loss events comprise congestive loss.
- 404 B it is thus determined whether the number of data frame loss events within the number of P data frames, is larger than N, or not. If the number of data frame loss events occurred is not larger than N 404 B(N), it is determined data frame delay information is detected in 406 . In the case, the number of data frame loss events occurred is larger than N, 404 B(Y), it is concluded that the frame loss events comprise congestive loss.
- the data frame delay information may be determined by using the so-called delay reference time field of data frames.
- the delay reference time may be regarded as a timestamp of a data packet when located at or passing a first network node.
- an amount of time has passed. This amount of time is checked and handled according to the presented method.
- the dynamic delay may be measured by detecting the time elapsed since a time counter was started.
- One way to determine the delay is to initiate a time counter in the network node from which the data flow is received, and to detect the time elapsed when it is received. Since the data frames arrive in a flow of data frames, the dynamic data delay may be the detected delay for each one of the data frame arrived in a sequence of data frames.
- the time derivative of the dynamic delay D reflects the time dependence of the dynamic delay. If the time derivative is positive, the dynamic delay D increases with increasing time, and if the time derivative is negative, the dynamic delay D decreases with increasing time.
- the data frame loss comprises non-congestive loss, when the dynamic delay D>50 ms has not been detected 408 (N) or/and that the time derivative of the dynamic delay D is not positive 410 (N). Also, it is determined that the data frame loss comprises congestive loss, when a dynamic delay >50 ms has been detected 408 (Y) or/and that the time derivative of the dynamic delay D is positive 410 (Y).
- congestion actions are omitted, according to 416 of FIG. 4B .
- congestion actions are performed, according to 418 of FIG. 4B .
- the number P is one example of the pre-determined first number of data packets, whereas the number p is one example of the pre-determined second number of consecutive data packet loss events.
- the number N is one example of the pre-determined third number of data packet loss events.
- the flowchart of 4 A and 4 B may be considered to be a refinement of the one of FIG. 3 , and comprises 404 A or 404 B, with which the risk of considering a congestive loss to be a non-congestive loss, is decreased.
- FIG. 7 presents block diagram of a network node 700 that is configured for increased utilization of a transport network link in receiving a data packet flow from another network node over the transport network of a HSPA system.
- the network node comprises a receiver 702 that is configured to receive the data packet flow, and a detector 704 that is configured to detect 102 ; 202 ; 302 a data packet loss in the received data packet flow, and to detect 104 ; 204 ; 306 data delay information of data packets of the data packet flow.
- the network node also comprises a controller 706 that is configured to determine 106 ; 206 , 208 , 210 ; 308 , 310 , 312 if the detected data packet loss comprise non-congestive data packet loss, based on the detected data packet loss and the detected data delay information.
- the controller is also configured to, for a pre-determined time period omit to perform 108 , 212 , 316 a congestion action towards the first network node affecting the data packet flow, when the detected data packet loss comprises non-congestive data packet loss.
- the detector 704 may be configured to detect a gap in a sequence of data packets of the data packet flow.
- the detector 704 may also be configured to detect a delay of a data packet of the data packet flow based on a reference time filled in a time field of the data packet.
- the detector 704 and the controller 706 may be implemented as a congestion detector of the network node 700 .
- the flow of data packets may comprise a flow of data frames.
- the network 700 node may comprise a Node B or a radio network controller, RNC.
- Embodiments of the invention may thus be implemented in both the RNC and the Node B, for applying embodiments of the invention in both the uplink and downlink, respectively, of the transport network link.
- the end user throughput and the utilization of low quality TN links is increased by omitting to perform unnecessary congestion actions in the case of non-congestive packet loss events.
- RNC radio network controller
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Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP13162136 | 2013-04-03 | ||
| EP13162136.9 | 2013-04-03 | ||
| EP20130162136 EP2787701A1 (en) | 2013-04-03 | 2013-04-03 | Non-congestive loss in HSPA congestion control |
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| US20140301225A1 US20140301225A1 (en) | 2014-10-09 |
| US9391898B2 true US9391898B2 (en) | 2016-07-12 |
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| US14/244,238 Expired - Fee Related US9391898B2 (en) | 2013-04-03 | 2014-04-03 | Non-congestive loss in HSPA congestion control |
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| EP (1) | EP2787701A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2016015178A1 (en) * | 2014-06-24 | 2016-02-04 | 华为技术有限公司 | Packet loss detection method, device, and system |
| CN110557297B (en) * | 2018-06-04 | 2021-06-08 | 华为技术有限公司 | Link detection method and related device |
| US20240171515A1 (en) * | 2023-12-21 | 2024-05-23 | Lemon Inc. | Method and system for controlling network traffic based on reasons for packet loss |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20070076598A1 (en) * | 2005-09-30 | 2007-04-05 | Lucent Technologies Inc. | Method and apparatus for preventing activation of a congestion control process |
| US8908524B2 (en) | 2010-03-30 | 2014-12-09 | Telefonaktiebolaget L M Ericsson (Publ) | Method of congestion detection in a cellular radio system |
| US9112797B2 (en) | 2010-03-31 | 2015-08-18 | Telefonaktiebolaget L M Ericsson (Publ) | Congestion handling in a communication network |
-
2013
- 2013-04-03 EP EP20130162136 patent/EP2787701A1/en not_active Withdrawn
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Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20070076598A1 (en) * | 2005-09-30 | 2007-04-05 | Lucent Technologies Inc. | Method and apparatus for preventing activation of a congestion control process |
| US8908524B2 (en) | 2010-03-30 | 2014-12-09 | Telefonaktiebolaget L M Ericsson (Publ) | Method of congestion detection in a cellular radio system |
| US9112797B2 (en) | 2010-03-31 | 2015-08-18 | Telefonaktiebolaget L M Ericsson (Publ) | Congestion handling in a communication network |
Non-Patent Citations (2)
| Title |
|---|
| Biaz, S. et al. "Discriminating Congestion Losses from Wireless Losses using Inter-Arrival Times at the Receiver." 1999 IEEE Symposium on Application-Specific Systems and Software Engineering and Technology, Mar. 24-27, 1999, Los Alamitos, California, pp. 10-17. |
| Nádas et al., "HSPA Transport Network Layer Congestion Control." Chapter 9, HSDPA/HSUPA Handbook. pp. 297-330. Ed. Furht et al. 2011. Taylor and Francis Group, LLC, Abingdon, UK. |
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| Publication number | Publication date |
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| EP2787701A1 (en) | 2014-10-08 |
| US20140301225A1 (en) | 2014-10-09 |
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